145 lines
5.8 KiB
C
145 lines
5.8 KiB
C
#include <c_NonrecursiveDirectedCycle.h>
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/* ------------------------------------------------------------------------------------------------------------------ */
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/* */
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typedef struct {
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c_size_t v; /* Current vertex */
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c_size_t edge_idx; /* Next neighbor index to examine in the adjacency list */
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} c_CycleFrame_t;
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/* ------------------------------------------------------------------------------------------------------------------ */
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/* */
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/* Private non-recursive DFS engine subroutine */
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static void c_NonrecursiveDirectedCycle_Process(c_NonrecursiveDirectedCycle_t* self, const c_Digraph_t* graph, c_size_t root, c_CycleFrame_t* frame_stack) {
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c_size_t stack_size = 0;
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/* Push initial root activation frame entry */
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self->marked[root] = C_TRUE;
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self->on_stack[root] = C_TRUE;
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frame_stack[stack_size++] = (c_CycleFrame_t){ .v = root, .edge_idx = 0 };
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while (stack_size > 0) {
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c_CycleFrame_t* current_frame = &frame_stack[stack_size - 1];
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c_size_t u = current_frame->v;
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c_AdjList_t* adj = &graph->adj_list[u];
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c_size_t neighbor_count = (c_size_t)c_UIntArray_GetSize(adj);
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c_bool_t advanced = C_FALSE;
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while (current_frame->edge_idx < neighbor_count) {
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c_uint_t target_value = 0;
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c_err_t err = c_UIntArray_Get(adj, current_frame->edge_idx, &target_value);
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current_frame->edge_idx++; /* Advance neighbor loop pointer state */
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if (err == C_SUCCESS) {
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c_size_t w = (c_size_t)target_value;
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/* Case A: Found an unvisited branch, push execution block down */
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if (!self->marked[w]) {
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self->marked[w] = C_TRUE;
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self->on_stack[w] = C_TRUE;
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self->edge_to[w] = u;
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frame_stack[stack_size++] = (c_CycleFrame_t){ .v = w, .edge_idx = 0 };
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advanced = C_TRUE;
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break;
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}
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/* Case B: Backedge detected (vertex is still active on stack) -> Cycle Found! */
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else if (self->on_stack[w]) {
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c_size_t* reverse_stack = (c_size_t*)c_Allocator_Calloc(&self->allocator, graph->V, sizeof(c_size_t));
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if (!reverse_stack) return;
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c_size_t trace_size = 0;
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for (c_size_t x = u; x != w; x = self->edge_to[x]) {
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reverse_stack[trace_size++] = x;
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}
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reverse_stack[trace_size++] = w;
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reverse_stack[trace_size++] = u;
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/* Build proper forward loop trail order inside cycle sequence container */
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while (trace_size > 0) {
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c_VertexIdList_Append(&self->cycle, (c_uint_t)reverse_stack[--trace_size]);
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}
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c_Allocator_Free(&self->allocator, reverse_stack);
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return; /* Instantly yield loop upon detection */
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}
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}
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}
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/* If short-circuit evaluation trapped a cycle at child nodes, cleanly escape up */
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if (c_NonrecursiveDirectedCycle_HasCycle(self)) return;
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/* If all edges out of vertex u have been fully cleared, pop it from stack tracking */
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if (!advanced) {
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self->on_stack[u] = C_FALSE;
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stack_size--;
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}
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}
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}
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c_err_t c_NonrecursiveDirectedCycle_Init(c_NonrecursiveDirectedCycle_t* self, const c_Digraph_t* graph, c_Allocator_t* allocator) {
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if (!self || !graph) return C_ERR_PARAM;
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self->allocator = allocator ? *allocator : c_DefaultAllocator;
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self->marked = (c_bool_t*)c_Allocator_Calloc(&self->allocator, graph->V, sizeof(c_bool_t));
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self->edge_to = (c_size_t*)c_Allocator_Calloc(&self->allocator, graph->V, sizeof(c_size_t));
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self->on_stack = (c_bool_t*)c_Allocator_Calloc(&self->allocator, graph->V, sizeof(c_bool_t));
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c_VertexIdList_Init(&self->cycle, 0, allocator);
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if (!self->marked || !self->edge_to || !self->on_stack) {
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c_NonrecursiveDirectedCycle_Destroy(self);
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return C_ERR_NOMEM;
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}
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/* Allocate explicit local runtime runtime loop frame stack structure sized O(V) */
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c_CycleFrame_t* frame_stack = (c_CycleFrame_t*)c_Allocator_Calloc(&self->allocator, graph->V, sizeof(c_CycleFrame_t));
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if (!frame_stack) {
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c_NonrecursiveDirectedCycle_Destroy(self);
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return C_ERR_NOMEM;
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}
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/* Sweep disconnected structural pockets across graph nodes boundary safely */
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for (c_size_t v = 0; v < graph->V; ++v) {
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if (!self->marked[v] && !c_NonrecursiveDirectedCycle_HasCycle(self)) {
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c_NonrecursiveDirectedCycle_Process(self, graph, v, frame_stack);
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}
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}
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c_Allocator_Free(&self->allocator, frame_stack);
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return C_SUCCESS;
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}
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void c_NonrecursiveDirectedCycle_Destroy(c_NonrecursiveDirectedCycle_t* self) {
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if (!self) return;
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if (self->marked) c_Allocator_Free(&self->allocator, self->marked);
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if (self->edge_to) c_Allocator_Free(&self->allocator, self->edge_to);
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if (self->on_stack) c_Allocator_Free(&self->allocator, self->on_stack);
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c_VertexIdList_Destroy(&self->cycle);
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self->marked = NULL;
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self->edge_to = NULL;
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self->on_stack = NULL;
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}
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c_err_t c_NonrecursiveDirectedCycle_GetCycle(c_NonrecursiveDirectedCycle_t* self, c_VertexIdList_t* out_cycle) {
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if (!self || !out_cycle) return C_ERR_PARAM;
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if (!c_NonrecursiveDirectedCycle_HasCycle(self)) return C_ERR_FAIL;
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c_size_t size = (c_size_t)c_VertexIdList_GetSize(&self->cycle);
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for (c_size_t i = 0; i < size; ++i) {
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c_uint_t val = 0;
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c_err_t err = c_VertexIdList_Get((c_VertexIdList_t*)&self->cycle, i, &val);
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if (err == C_SUCCESS) {
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c_err_t app_err = c_VertexIdList_Append(out_cycle, val);
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if (app_err != C_SUCCESS) return app_err;
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}
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}
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return C_SUCCESS;
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}
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